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DM504 Datasheet(PDF) 154 Page - Texas Instruments

Part # DM504
Description  SoC for Vision Analytics 12mm Package (ABE) Silicon Revision 2.0
PDF  211 Pages
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Manufacturer  TI1 [Texas Instruments]
Direct Link  http://www.ti.com
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DM504 Datasheet(HTML) 154 Page - Texas Instruments

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DM504
SPRS977A – NOVEMBER 2016 – REVISED JANUARY 2017
www.ti.com
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Detailed Description
Copyright © 2016–2017, Texas Instruments Incorporated
•
Dual Cortex-M4 image processing unit (IPU) subsystems – IPU1 and IPU2
The Spinlock module implements 256 spinlocks (or hardware semaphores), which provide an efficient
way to perform a lock operation of a device resource using a single read-access, avoiding the need of
a readmodify- write bus transfer that the programmable cores are not capable of.
For more information, see chapter Spinlock of the device TRM.
6.8
Interrupt Controller
The device has a large number of interrupts to service the needs of its many peripherals and subsystems.
The DSP, and IPU, and EVE subsystems are capable of servicing these interrupts via their integrated
interrupt controllers. In addition, each processor's interrupt controller is preceded by an Interrupt Controller
Crossbar (IRQ_CROSSBAR) that provides flexibility in mapping the device interrupts to processor
interrupt inputs. For more information about IRQ crossbar, see chapter Control Module of the Device
TRM.
C66x DSP Subsystem Interrupt Controller (DSP1_INTC)
There are one Digital Signal Processing (DSP) subsystem in the device - DSP1. The DSP subsystem
integrates an interrupt controller - DSP1_INTC, which interfaces the system events to the C66x core
interrupt and exceptions inputs. It combines up to 128 interrupts into 12 prioritized interrupts presented to
the C66x CPU.
For detailed information about this module, see chapter DSP Subsystems of the Device TRM.
Dual Cortex-M4 IPU Subsystem Interrupt Controller (IPU_Cx_INTC, where x = 1, 2)
There is one Image Processing Unit (IPU) subsystem in the device. The IPU subsystem integrates two
ARM® Cortex-M4 cores.
A Nested Vectored Interrupt Controller (NVIC) is integrated within each Cortex-M4. The interrupt mapping
is the same for the two cores to facilitate parallel processing. The NVIC supports:
•
96 external interrupts (in addition to 16 Cortex-M4 internal interrupts), which are dynamically prioritized
with 16 levels of priority defined for each core
•
Low-latency exception and interrupt handling
•
Prioritization and handling of exceptions
•
Control of the local power management
•
Debug accesses to the processor core
For detailed information about this module, refer to ARM Cortex-M4 Technical Reference Manual
(available at infocenter.arm.com/help/index.jsp).
EVE Subsystem Interrupt Controller (EVE_INTC)
There is one Embedded Video Engine (EVE) subsystems in the device. The EVE subsystem integrates an
interrupt controller - EVE_INTC, which handles incoming interrupts, merging them with internal interrupt
sources to drive ARP32's interrupt inputs. It also allows ARP32 to generate outgoing interrupts or events
to synchronize with other system processors and EDMA.
The EVE_INTC supports up to 32 active-high level interrupt inputs. Its architecture allows both hardware
and software prioritization.
For detailed information about this module, see chapter Embedded Vision Engine of the Device TRM.
6.9
EDMA
The enhanced direct memory access module, also called EDMA, performs high-performance data
transfers between two slave points, memories and peripheral devices without microprocessor unit (MPU)
or digital signal processor (DSP) support during transfer. EDMA transfer is programmed through a logical
EDMA channel, which allows the transfer to be optimally tailored to the requirements of the application.



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